4.7 Article

Singlet fission and tandem solar cells reduce thermal degradation and enhance lifespan

Journal

PROGRESS IN PHOTOVOLTAICS
Volume 29, Issue 8, Pages 899-906

Publisher

WILEY
DOI: 10.1002/pip.3405

Keywords

module temperature; Perovskite tandem; singlet fission

Funding

  1. Australian Research Council [CE170100026]
  2. UNSW
  3. Australian Research Council [CE170100026] Funding Source: Australian Research Council

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The economic value of a photovoltaic installation is determined by its lifespan and power conversion efficiency. Silicon tandem and MEG-enhanced silicon cell architectures result in lower cell operating temperatures, increasing device lifetime compared to standard c-Si cells, and offer additional advantages.
The economic value of a photovoltaic installation depends upon both its lifespan and power conversion efficiency. Progress toward the latter includes mechanisms to circumvent the Shockley-Queisser limit, such as tandem designs and multiple exciton generation (MEG). Here we explain how both silicon tandem and MEG-enhanced silicon cell architectures result in lower cell operating temperatures, increasing the device lifetime compared to standard c-Si cells. Also demonstrated are further advantages from MEG enhanced silicon cells: (i) the device architecture can completely circumvent the need for current-matching; and (ii) upon degradation, tetracene, a candidate singlet fission (a form of MEG) material, is transparent to the solar spectrum. The combination of (i) and (ii) mean that the primary silicon device will continue to operate with reasonable efficiency even if the singlet fission layer degrades. The lifespan advantages of singlet fission enhanced silicon cells, from a module perspective, are compared favorably alongside the highly regarded perovskite/silicon tandem and conventional c-Si modules.

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